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Model: NLPnorth/snakmodel-7b-instruct
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---
language:
- da
license: llama2
library_name: transformers
base_model:
- NLPnorth/snakmodel-7b-base
pipeline_tag: text-generation
---
![SnakModel Instruct Logo](snakmodel.png)
## Model Details
**SnakModel** is a 7B-parameter model specifically designed for the Danish language. This is the instruction-tuned variant: `SnakModel-7B (instruct)`. Our models build upon [Llama 2](https://huggingface.co/meta-llama/Llama-2-7b-hf), which we continuously pre-train on a diverse collection of Danish corpora comprising 350M documents and 13.6B words, before tuning it on 3.7M Danish instruction-answer pairs.
**Model Developers**
[NLPnorth research unit](https://nlpnorth.github.io) at the [IT University of Copenhagen](https://itu.dk), Denmark.
**Variations**
SnakModel comes as an instruction-tuned, and a base version. In addition, each model includes intermediate checkpoints (under model revisions).
For running the model locally, we also provide a 4-bit quantized version optimized for Apple Silicon under [NLPnorth/snakmodel-7b-instruct-mlx-4bit/](https://huggingface.co/NLPnorth/snakmodel-7b-instruct-mlx-4bit/).
**Input**
Text only, with instructions following the `[INST] {instruction} [/INST]` template.
Quickstart:
Here is a code snippet with apply_chat_template to show you how to load the tokenizer and model and how to generate contents.
```
from transformers import AutoModelForCausalLM, AutoTokenizer
model_name = "NLPnorth/snakmodel-7b-instruct"
model = AutoModelForCausalLM.from_pretrained(
model_name,
torch_dtype="auto",
device_map="auto"
)
tokenizer = AutoTokenizer.from_pretrained(model_name)
prompt = "Hvor ligger IT Universitet?"
messages = [
{"role": "system", "content": "Du er Snakmodel, skabt af IT-Universitetet i København. Du er en hjælpsom assistent."},
{"role": "user", "content": prompt}
]
text = tokenizer.apply_chat_template(
messages,
tokenize=False,
add_generation_prompt=True
)
model_inputs = tokenizer([text], return_tensors="pt").to(model.device)
generated_ids = model.generate(
**model_inputs,
max_new_tokens=20
)
generated_ids = [
output_ids[len(input_ids):] for input_ids, output_ids in zip(model_inputs.input_ids, generated_ids)
]
response = tokenizer.batch_decode(generated_ids, skip_special_tokens=True)[0]
print(response)
```
**Output**
Text only.
**Model Architecture**
SnakModel is an auto-regressive, transformer-based language model. The `instruct` version uses supervised fine-tuning (SFT) to enable instruction following in Danish.
**Model Dates**
SnakModel was trained between January 2024 and September 2024.
**License**
This model follows the original [Llama 2 license agreement](https://huggingface.co/meta-llama/Llama-2-7b-hf/blob/main/LICENSE.txt).
**Research Paper**
[Released in Q1 2025]
## Intended Use & Limitations
**Intended Use Cases**
SnakModel is intended for use in Danish. The instruction-tuned variant is intended for assistant-like chat.
The `instruct` variant follows the Llama 2 (chat) instruction template, in which instructions are encapsulated in special tokens, i.e., `[INST] {instruction} [/INST]`.
**Limitations**
SnakModel variants are fine-tuned on Danish data. As such, the use in other languages falls out-of-scope. While we found SnakModel to be more proficient in Danish, than other Llama 2-based models, it still frequently generates factually incorrect output. Make sure to carefully evaluate and weigh these factors before deploying the model. In addition, make sure to adhere to the original [Llama 2 license agreement](https://huggingface.co/meta-llama/Llama-2-7b-hf/blob/main/LICENSE.txt).
## Hardware and Software
**Training Factors**
SnakModel is trained on private infrastructure with one node, containing four NVIDIA A100-PCIe 40GB GPUs. The node has an AMD Epyc 7662 128 Core Processor and 1TB of RAM.
**Carbon Footprint**
Total training time accounted to 8,928 GPU hours, with an average carbon efficiency at 0.122kg CO2eq / kWh. This is equivalent to 272.3kg CO2eq emitted, based on the [Machine Learning Impact calculator](https://mlco2.github.io/impact).
## Training Data
**Overview**
SnakModel was continuously pre-train on a diverse collection of Danish corpora comprising 350M documents and 13.6B words. The `instruct` version is further tuned on 3.7M Danish instruction-answer pairs.
**Data Freshness**
The pre-training data has a cutoff of January 2024.
## Evaluation Results
| Model | LA (mF1) | NER (μF1) | Senti (mF1) | Summ (BERTScore) | CSR (Acc.) | QA (F1) | TM (Acc.) | CT (Acc.) | AVG |
| -------------------------- | --------: | --------: | ----------: | ---------------: | ---------: | --------: | --------: | --------: | --------: |
| LLaMA2-7B\_base | 33.43 | 22.31 | 61.54 | 65.50 | 29.76 | 63.54 | 38.69 | 57.05 | 46.48 |
| LLaMA2-7B\_chat | 47.42 | 24.63 | 62.35 | 66.15 | **32.24** | 61.34 | 46.67 | 55.18 | 49.50 |
| LLaMA2-7B\_base + INST₍d₎ₐ | 36.10 | 28.48 | 62.86 | 66.43 | 29.04 | 64.40 | 49.10 | 58.46 | 49.35 |
| LLaMA2-7B\_chat + INST₍d₎ₐ | 43.40 | 29.70 | 65.92 | 65.81 | 30.95 | 62.46 | 57.26 | 55.59 | 51.39 |
| Viking-7B | 33.67 | 17.18 | 49.48 | 61.96 | 25.11 | 56.29 | 23.97 | 34.90 | 37.82 |
| SnakModel-7B\_base | **56.28** | 19.91 | 57.42 | 58.95 | 30.47 | 18.52 | **69.14** | 60.93 | 46.45 |
| SnakModel-7B\_inst | 52.91 | **29.76** | **66.70** | **66.61** | 29.46 | **64.66** | **71.05** | **71.88** | **56.63** |
## Citation
```
@inproceedings{zhang-etal-2025-snakmodel,
title = "{SnakModel}: {Lessons} Learned from Training an Open {Danish} Large Language Model",
author = {Zhang, Mike and
M{\"u}ller-Eberstein, Max and
Bassignana, Elisa and
Goot, Rob van der},
editor = "Johansson, Richard and
Stymne, Sara",
booktitle = "Proceedings of the Joint 25th Nordic Conference on Computational Linguistics and 11th Baltic Conference on Human Language Technologies (NoDaLiDa/Baltic-HLT 2025)",
month = mar,
year = "2025",
address = "Tallinn, Estonia",
publisher = "University of Tartu Library",
url = "https://aclanthology.org/2025.nodalida-1.80/",
pages = "812--825",
ISBN = "978-9908-53-109-0",
abstract = "We present SnakModel, a Danish large language model (LLM) based on Llama2-7B, which we continuously pre-train on 13.6B Danish words, and further tune on 3.7M Danish instructions. As best practices for creating LLMs for smaller language communities have yet to be established, we examine the effects of early modeling and training decisions on downstream performance throughout the entire training pipeline, including (1) the creation of a strictly curated corpus of Danish text from diverse sources; (2) the language modeling and instruction-tuning training process itself, including the analysis of intermediate training dynamics, and ablations across different hyperparameters; (3) an evaluation on eight language and culturally-specific tasks. Across these experiments SnakModel achieves the highest overall performance, outperforming multiple contemporary Llama2-7B-based models. By making SnakModel, the majority of our pre-training corpus, and the associated code available under open licenses, we hope to foster further research and development in Danish Natural Language Processing, and establish training guidelines for languages with similar resource constraints."
}
```

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{
"bos_token": {
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"lstrip": false,
"normalized": false,
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"single_word": false
},
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}
}

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{
"add_bos_token": true,
"add_eos_token": false,
"added_tokens_decoder": {
"0": {
"content": "<unk>",
"lstrip": false,
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"1": {
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},
"2": {
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"sp_model_kwargs": {},
"tokenizer_class": "LlamaTokenizer",
"unk_token": "<unk>",
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"chat_template": "{% if messages[0]['role'] == 'system' %}{% set loop_messages = messages[1:] %}{% set system_message = messages[0]['content'] %}{% else %}{% set loop_messages = messages %}{% set system_message = false %}{% endif %}{% for message in loop_messages %}{% if (message['role'] == 'user') != (loop.index0 % 2 == 0) %}{{ raise_exception('Conversation roles must alternate user/assistant/user/assistant/...') }}{% endif %}{% if loop.index0 == 0 and system_message != false %}{% set content = '<<SYS>>\\n' + system_message + '\\n<</SYS>>\\n\\n' + message['content'] %}{% else %}{% set content = message['content'] %}{% endif %}{% if message['role'] == 'user' %}{{ bos_token + '[INST] ' + content.strip() + ' [/INST]' }}{% elif message['role'] == 'assistant' %}{{ ' ' + content.strip() + ' ' + eos_token }}{% endif %}{% endfor %}"
}